题目大意:给定一个长度为N的序列。有M次查询,每次查询l。r之间元素的总和,同样元素仅仅算一次。
解题思路:涨姿势了,线段树的一种题型。离线操作,将查询依照右区间排序,每次考虑一个询问。将mv ~ r的点所有标记为存在。而且对于每一个位置i。假设A[i]在前面已经出现过了。那么将前面的那个位置减掉A[i]。当前位置加入A[i],这样做维护了每一个数尽量做,那么碰到查询。用sum[r] - sum[l-1]就可以。
#include <cstdio>
#include <cstring>
#include <vector>
#include <map>
#include <algorithm>
using namespace std;
typedef long long ll;
const int maxn = 30000;
int N, Q;
ll A[maxn+5], ans[100005];
map<ll, int> G;
#define lson(x) ((x)<<1)
#define rson(x) (((x)<<1)|1)
int lc[maxn << 2], rc[maxn << 2];
ll s[maxn << 2];
inline void pushup (int u) {
s[u] = s[lson(u)] + s[rson(u)];
}
void build (int u, int l, int r) {
lc[u] = l;
rc[u] = r;
s[u] = 0;
if (l == r)
return;
int mid = (lc[u] + rc[u]) / 2;
build(lson(u), l, mid);
build(rson(u), mid + 1, r);
pushup(u);
}
void modify(int u, int x, ll d) {
if (x == lc[u] && rc[u] == x) {
s[u] += d;
return;
}
int mid = (lc[u] + rc[u]) / 2;
if (x <= mid)
modify(lson(u), x, d);
else
modify(rson(u), x, d);
pushup(u);
}
ll query(int u, int l, int r) {
if (l <= lc[u] && rc[u] <= r)
return s[u];
ll ret = 0;
int mid = (lc[u] + rc[u]) / 2;
if (l <= mid)
ret += query(lson(u), l, r);
if (r > mid)
ret += query(rson(u), l, r);
pushup(u);
return ret;
}
struct Seg {
int l, r, id;
Seg (int l = 0, int r = 0, int id = 0) {
this->l = l;
this->r = r;
this->id = id;
}
friend bool operator < (const Seg& a, const Seg& b) {
return a.r < b.r;
}
};
vector<Seg> vec;
void init () {
int l, r;
G.clear();
vec.clear();
scanf("%d", &N);
for (int i = 1; i <= N; i++)
scanf("%I64d", &A[i]);
scanf("%d", &Q);
for (int i = 1; i <= Q; i++) {
scanf("%d%d", &l, &r);
vec.push_back(Seg(l, r, i));
}
sort(vec.begin(), vec.end());
}
void solve () {
build (1, 0, N);
int k = 0;
for (int i = 0; i < Q; i++) {
for ( ; k <= vec[i].r; k++) {
if (G[A[k]])
modify(1, G[A[k]], -A[k]);
G[A[k]] = k;
modify(1, k, A[k]);
}
ans[vec[i].id] = query(1, vec[i].l, vec[i].r);
}
for (int i = 1; i <= Q; i++)
printf("%I64d
", ans[i]);
}
int main () {
int cas;
scanf("%d", &cas);
while (cas--) {
init();
solve();
}
return 0;
}